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This modifies scripts/check_header_guards.py to add the CARBON_ prefix; everything else is pre-commit.
380 lines
14 KiB
C++
380 lines
14 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#ifndef CARBON_TOOLCHAIN_PARSER_PARSE_TREE_H_
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#define CARBON_TOOLCHAIN_PARSER_PARSE_TREE_H_
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#include <iterator>
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#include "common/ostream.h"
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#include "llvm/ADT/SmallVector.h"
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#include "llvm/ADT/StringRef.h"
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#include "llvm/ADT/iterator.h"
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#include "llvm/ADT/iterator_range.h"
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#include "llvm/Support/raw_ostream.h"
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#include "toolchain/diagnostics/diagnostic_emitter.h"
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#include "toolchain/lexer/tokenized_buffer.h"
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#include "toolchain/parser/parse_node_kind.h"
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namespace Carbon {
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// A tree of parsed tokens based on the language grammar.
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//
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// This is a purely syntactic parse tree without any semantics yet attached. It
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// is based on the token stream and the grammar of the language without even
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// name lookup.
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//
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// The tree is designed to make depth-first traversal especially efficient, with
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// postorder and reverse postorder (RPO, a topological order) not even requiring
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// extra state.
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//
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// The nodes of the tree follow a flyweight pattern and are handles into the
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// tree. The tree itself must be available to query for information about those
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// nodes.
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//
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// Nodes also have a precise one-to-one correspondence to tokens from the parsed
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// token stream. Each node can be thought of as the tree-position of a
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// particular token from the stream.
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//
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// The tree is immutable once built, but is designed to support reasonably
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// efficient patterns that build a new tree with a specific transformation
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// applied.
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class ParseTree {
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public:
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class Node;
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class PostorderIterator;
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class SiblingIterator;
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// The maximum stack depth allowed while recursing the parse tree.
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// This is meant to approximate system stack limits, but we may need to find a
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// better way to track what the system is enforcing.
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static constexpr int StackDepthLimit = 200;
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// Parses the token buffer into a `ParseTree`.
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//
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// This is the factory function which is used to build parse trees.
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static auto Parse(TokenizedBuffer& tokens, DiagnosticConsumer& consumer)
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-> ParseTree;
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// Tests whether there are any errors in the parse tree.
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[[nodiscard]] auto has_errors() const -> bool { return has_errors_; }
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// Returns the number of nodes in this parse tree.
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[[nodiscard]] auto size() const -> int { return node_impls_.size(); }
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// Returns an iterable range over the parse tree nodes in depth-first
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// postorder.
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[[nodiscard]] auto postorder() const
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-> llvm::iterator_range<PostorderIterator>;
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// Returns an iterable range over the parse tree node and all of its
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// descendants in depth-first postorder.
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[[nodiscard]] auto postorder(Node n) const
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-> llvm::iterator_range<PostorderIterator>;
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// Returns an iterable range over the direct children of a node in the parse
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// tree. This is a forward range, but is constant time to increment. The order
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// of children is the same as would be found in a reverse postorder traversal.
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[[nodiscard]] auto children(Node n) const
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-> llvm::iterator_range<SiblingIterator>;
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// Returns an iterable range over the roots of the parse tree. This is a
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// forward range, but is constant time to increment. The order of roots is the
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// same as would be found in a reverse postorder traversal.
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[[nodiscard]] auto roots() const -> llvm::iterator_range<SiblingIterator>;
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// Tests whether a particular node contains an error and may not match the
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// full expected structure of the grammar.
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[[nodiscard]] auto node_has_error(Node n) const -> bool;
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// Returns the kind of the given parse tree node.
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[[nodiscard]] auto node_kind(Node n) const -> ParseNodeKind;
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// Returns the token the given parse tree node models.
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[[nodiscard]] auto node_token(Node n) const -> TokenizedBuffer::Token;
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// Returns the text backing the token for the given node.
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//
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// This is a convenience method for chaining from a node through its token to
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// the underlying source text.
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[[nodiscard]] auto GetNodeText(Node n) const -> llvm::StringRef;
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// Prints a description of the parse tree to the provided `raw_ostream`.
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//
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// While the parse tree is represented as a postorder sequence, we print it in
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// preorder to make it easier to visualize and read. The node indices are the
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// postorder indices. The print out represents each node as a YAML record,
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// with children nested within it.
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//
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// A single node without children is formatted as:
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// ```
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// {node_index: 0, kind: 'foo', text: '...'}
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// ```
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// A node with two children, one of them with an error:
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// ```
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// {node_index: 2, kind: 'foo', text: '...', children: [
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// {node_index: 0, kind: 'bar', text: '...', has_error: yes},
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// {node_index: 1, kind: 'baz', text: '...'}]}
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// ```
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// The top level is formatted as an array of these nodes.
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// ```
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// [
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// {node_index: 1, kind: 'foo', text: '...'},
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// {node_index: 0, kind: 'foo', text: '...'},
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// ...
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// ]
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// ```
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//
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// This can be parsed as YAML using tools like `python-yq` combined with `jq`
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// on the command line. The format is also reasonably amenable to other
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// line-oriented shell tools from `grep` to `awk`.
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auto Print(llvm::raw_ostream& output) const -> void;
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// Verifies the parse tree structure.
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//
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// This tries to check any invariants of the parse tree structure and write
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// out information about it to stderr. Returns false if anything fails to
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// verify. This is primarily intended to be used as a debugging aid. A typical
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// usage is to `assert` on the result. This routine doesn't directly assert so
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// that it can be used even when asserts are disabled or within a debugger.
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[[nodiscard]] auto Verify() const -> bool;
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private:
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class Parser;
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friend Parser;
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// The in-memory representation of data used for a particular node in the
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// tree.
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struct NodeImpl {
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explicit NodeImpl(ParseNodeKind k, TokenizedBuffer::Token t,
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int subtree_size_arg)
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: kind(k), token(t), subtree_size(subtree_size_arg) {}
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// The kind of this node. Note that this is only a single byte.
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ParseNodeKind kind;
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// We have 3 bytes of padding here that we can pack flags or other compact
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// data into.
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// Whether this node is or contains a parse error.
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//
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// When this is true, this node and its children may not have the expected
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// grammatical production structure. Prior to reasoning about any specific
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// subtree structure, this flag must be checked.
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//
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// Not every node in the path from the root to an error will have this field
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// set to true. However, any node structure that fails to conform to the
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// expected grammatical production will be contained within a subtree with
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// this flag set. Whether parents of that subtree also have it set is
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// optional (and will depend on the particular parse implementation
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// strategy). The goal is that you can rely on grammar-based structural
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// invariants *until* you encounter a node with this set.
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bool has_error = false;
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// The token root of this node.
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TokenizedBuffer::Token token;
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// The size of this node's subtree of the parse tree. This is the number of
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// nodes (and thus tokens) that are covered by this node (and its
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// descendents) in the parse tree.
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//
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// During a *reverse* postorder (RPO) traversal of the parse tree, this can
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// also be thought of as the offset to the next non-descendant node. When
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// this node is not the first child of its parent (which is the last child
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// visited in RPO), that is the offset to the next sibling. When this node
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// *is* the first child of its parent, this will be an offset to the node's
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// parent's next sibling, or if it the parent is also a first child, the
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// grandparent's next sibling, and so on.
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//
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// This field should always be a positive integer as at least this node is
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// part of its subtree.
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int32_t subtree_size;
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};
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static_assert(sizeof(NodeImpl) == 12,
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"Unexpected size of node implementation!");
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// Wires up the reference to the tokenized buffer. The global `parse` routine
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// should be used to actually parse the tokens into a tree.
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explicit ParseTree(TokenizedBuffer& tokens_arg) : tokens_(&tokens_arg) {}
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// Depth-first postorder sequence of node implementation data.
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llvm::SmallVector<NodeImpl, 0> node_impls_;
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TokenizedBuffer* tokens_;
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// Indicates if any errors were encountered while parsing.
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//
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// This doesn't indicate how much of the tree is structurally accurate with
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// respect to the grammar. That can be identified by looking at the `HasError`
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// flag for a given node (see above for details). This simply indicates that
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// some errors were encountered somewhere. A key implication is that when this
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// is true we do *not* have the expected 1:1 mapping between tokens and parsed
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// nodes as some tokens may have been skipped.
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bool has_errors_ = false;
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};
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// A lightweight handle representing a node in the tree.
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//
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// Objects of this type are small and cheap to copy and store. They don't
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// contain any of the information about the node, and serve as a handle that
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// can be used with the underlying tree to query for detailed information.
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//
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// That said, nodes can be compared and are part of a depth-first pre-order
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// sequence across all nodes in the parse tree.
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class ParseTree::Node {
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public:
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// Node handles are default constructable, but such a node cannot be used
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// for anything. It just allows it to be initialized later through
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// assignment. Any other operation on a default constructed node is an
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// error.
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Node() = default;
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friend auto operator==(Node lhs, Node rhs) -> bool {
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return lhs.index_ == rhs.index_;
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}
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friend auto operator!=(Node lhs, Node rhs) -> bool {
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return lhs.index_ != rhs.index_;
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}
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friend auto operator<(Node lhs, Node rhs) -> bool {
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return lhs.index_ < rhs.index_;
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}
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friend auto operator<=(Node lhs, Node rhs) -> bool {
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return lhs.index_ <= rhs.index_;
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}
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friend auto operator>(Node lhs, Node rhs) -> bool {
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return lhs.index_ > rhs.index_;
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}
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friend auto operator>=(Node lhs, Node rhs) -> bool {
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return lhs.index_ >= rhs.index_;
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}
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// Returns an opaque integer identifier of the node in the tree. Clients
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// should not expect any particular semantics from this value.
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//
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// FIXME: Maybe we can switch to stream operator overloads?
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[[nodiscard]] auto index() const -> int { return index_; }
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// Prints the node index.
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auto Print(llvm::raw_ostream& output) const -> void;
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// Returns true if the node is valid; in other words, it was not default
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// initialized.
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auto is_valid() -> bool { return index_ != InvalidValue; }
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private:
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friend ParseTree;
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friend Parser;
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friend PostorderIterator;
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friend SiblingIterator;
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// Value for uninitialized nodes.
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static constexpr int InvalidValue = -1;
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// Constructs a node with a specific index into the parse tree's postorder
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// sequence of node implementations.
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explicit Node(int index) : index_(index) {}
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// The index of this node's implementation in the postorder sequence.
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int32_t index_ = InvalidValue;
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};
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// A random-access iterator to the depth-first postorder sequence of parse nodes
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// in the parse tree. It produces `ParseTree::Node` objects which are opaque
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// handles and must be used in conjunction with the `ParseTree` itself.
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class ParseTree::PostorderIterator
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: public llvm::iterator_facade_base<PostorderIterator,
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std::random_access_iterator_tag, Node,
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int, Node*, Node> {
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public:
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// Default construction is only provided to satisfy iterator requirements. It
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// produces an unusable iterator, and you must assign a valid iterator to it
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// before performing any operations.
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PostorderIterator() = default;
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auto operator==(const PostorderIterator& rhs) const -> bool {
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return node_ == rhs.node_;
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}
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auto operator<(const PostorderIterator& rhs) const -> bool {
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return node_ < rhs.node_;
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}
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auto operator*() const -> Node { return node_; }
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auto operator-(const PostorderIterator& rhs) const -> int {
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return node_.index_ - rhs.node_.index_;
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}
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auto operator+=(int offset) -> PostorderIterator& {
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node_.index_ += offset;
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return *this;
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}
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auto operator-=(int offset) -> PostorderIterator& {
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node_.index_ -= offset;
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return *this;
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}
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// Prints the underlying node index.
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auto Print(llvm::raw_ostream& output) const -> void;
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private:
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friend class ParseTree;
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explicit PostorderIterator(Node n) : node_(n) {}
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Node node_;
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};
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// A forward iterator across the silbings at a particular level in the parse
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// tree. It produces `ParseTree::Node` objects which are opaque handles and must
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// be used in conjunction with the `ParseTree` itself.
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//
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// While this is a forward iterator and may not have good locality within the
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// `ParseTree` data structure, it is still constant time to increment and
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// suitable for algorithms relying on that property.
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//
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// The siblings are discovered through a reverse postorder (RPO) tree traversal
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// (which is made constant time through cached distance information), and so the
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// relative order of siblings matches their RPO order.
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class ParseTree::SiblingIterator
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: public llvm::iterator_facade_base<
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SiblingIterator, std::forward_iterator_tag, Node, int, Node*, Node> {
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public:
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SiblingIterator() = default;
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auto operator==(const SiblingIterator& rhs) const -> bool {
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return node_ == rhs.node_;
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}
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auto operator<(const SiblingIterator& rhs) const -> bool {
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// Note that child iterators walk in reverse compared to the postorder
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// index.
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return node_ > rhs.node_;
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}
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auto operator*() const -> Node { return node_; }
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using iterator_facade_base::operator++;
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auto operator++() -> SiblingIterator& {
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node_.index_ -= std::abs(tree_->node_impls_[node_.index_].subtree_size);
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return *this;
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}
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// Prints the underlying node index.
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auto Print(llvm::raw_ostream& output) const -> void;
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private:
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friend class ParseTree;
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explicit SiblingIterator(const ParseTree& tree_arg, Node n)
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: tree_(&tree_arg), node_(n) {}
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const ParseTree* tree_;
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Node node_;
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};
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} // namespace Carbon
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#endif // CARBON_TOOLCHAIN_PARSER_PARSE_TREE_H_
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